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An Orthotopic Sciatic Nerve Xenograft for Neurofibromatosis Type 1 Neurofibromas
Published on: October 10, 2025
Next-generation humanized patient-derived xenograft mouse model for pre-clinical antibody studies in neuroblastoma
Rosa Nguyen1,2, Anand G Patel3,4, Lyra M Griffiths4
1Department of Oncology, St. Jude Children's Research Hospital, Memphis, TN, USA. hongharosa.nguyen@nih.gov.
Abstract:
Faithful tumor mouse models are fundamental research tools to advance the field of immuno-oncology (IO). This is particularly relevant in diseases with low incidence, as in the case of pediatric malignancies, that rely on pre-clinical therapeutic development. However, conventional syngeneic and genetically engineered mouse models fail to recapitulate the tumor heterogeneity and microenvironmental complexity of human pathology that are essential determinants of cancer-directed immunity. Here, we characterize a novel mouse model that supports human natural killer (NK) cell development and engraftment of neuroblastoma orthotopic patient-derived xenograft (O-PDX) for pre-clinical antibody and cytokine testing. Using cytotoxicity assays, single-cell RNA-sequencing, and multi-color flow cytometry, we demonstrate that NK cells that develop in the humanized mice are fully licensed to execute NK cell cytotoxicity, permit human tumor engraftment, but can be therapeutically redirected to induce antibody-dependent cell-mediated cytotoxicity (ADCC). Although these cells share phenotypic and molecular features with healthy controls, we noted that they lacked an NK cell subset, termed activated NK cells, that is characterized by differentially expressed genes that are induced by cytokine activation. Because this subset of genes is also downregulated in patients with neuroblastoma compared to healthy controls, we hypothesize that this finding could be due to tumor-mediated suppressive effects. Thus, despite its technical complexity, this humanized patient-derived xenograft mouse model could serve as a faithful system for future testing of IO applications and studies of underlying immunologic processes.
Insights
A new humanized mouse model supports human natural killer (NK) cell development for testing immuno-oncology (IO) therapies in neuroblastoma. This model enables preclinical antibody and cytokine testing, advancing cancer research.
Area of Science:
- Immunology
- Oncology
- Preclinical Research
Background:
- Faithful tumor mouse models are crucial for immuno-oncology (IO) research, especially for rare pediatric cancers.
- Conventional models lack the complexity and heterogeneity of human tumors, limiting preclinical therapeutic development.
- There is a need for advanced models that recapitulate human tumor microenvironments for effective cancer immunity studies.
Purpose of the Study:
- To characterize a novel humanized mouse model supporting human natural killer (NK) cell development.
- To evaluate the engraftment of neuroblastoma patient-derived xenografts (O-PDX) in this model.
- To assess the potential for preclinical antibody and cytokine testing in immuno-oncology.
Main Methods:
- Development of a humanized mouse model for NK cell function.
- Engraftment of orthotopic patient-derived xenografts (O-PDX) of neuroblastoma.
- Utilized cytotoxicity assays, single-cell RNA-sequencing, and multi-color flow cytometry for analysis.
Main Results:
- Human NK cells developed and were functional in the humanized mice, capable of cytotoxicity and supporting tumor engraftment.
- NK cells could be therapeutically redirected to induce antibody-dependent cell-mediated cytotoxicity (ADCC).
- A subset of activated NK cells, found in healthy controls, was absent, potentially due to tumor-mediated suppression.
Conclusions:
- The humanized O-PDX mouse model is a faithful system for testing immuno-oncology applications in neuroblastoma.
- This model allows for the study of underlying immunologic processes in the tumor microenvironment.
- Findings suggest tumor-mediated suppression may affect NK cell activation in neuroblastoma patients.
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